Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/37420
Appears in Collections:Biological and Environmental Sciences Journal Articles
Peer Review Status: Refereed
Title: Water transparency and color in large rivers observed by Sentinel-2 MSI and its implications for SDG 6.3.2 monitoring
Author(s): Jiang, Xuezhu
Wang, Shenglei
Li, Junsheng
Spyrakos, Evangelos
Yao, Huaxin
Zhang, Fangfang
Tyler, Andrew N
Zhang, Bing
Contact Email: evangelos.spyrakos@stir.ac.uk
Keywords: Secchi disk depth
Forel-Ule Index
Water quality
Sentinel-2
Rivers
Issue Date: Sep-2025
Date Deposited: 26-Sep-2025
Citation: Jiang X, Wang S, Li J, Spyrakos E, Yao H, Zhang F, Tyler AN & Zhang B (2025) Water transparency and color in large rivers observed by Sentinel-2 MSI and its implications for SDG 6.3.2 monitoring. <i>International Journal of Applied Earth Observation and Geoinformation</i>, 143, Art. No.: 104826. https://doi.org/10.1016/j.jag.2025.104826
Abstract: Rivers are vital to Earth’s water cycle and human societies, yet their water quality is increasingly threatened by climate change and human activities. While satellite remote sensing has emerged as a powerful tool for large-scale water quality monitoring across diverse aquatic ecosystems, a systematic analysis of water optical properties in rivers remains limited, restricting its use in supporting Sustainable Development Goal (SDG) monitoring. This study presents the first comprehensive analysis of water transparency (Secchi disk depth, ZSD) and color (Forel-Ule Index) in the five large rivers (Yangtze, Danube, Mississippi, Nile, and Amazon) using Sentinel-2 MSI data (2019–2021). Results reveal significant spatial-seasonal variations: Danube had the highest transparency (ZSD) and bluest color (FUI), followed by Nile, Yangtze, Mississippi, and Amazon. These differences were primarily driven by basin-specific soil erodibility and precipitation. Spatially, the Yangtze, Mississippi, and Amazon exhibited decreasing ZSD and increasing FUI from their upper to lower reaches, contrasting with different trends in Danube and Nile, highlighting the influence of large dams. Seasonally, two different patterns were observed in the five rivers, underscoring the hydrological influences on water optical properties. Furthermore, as two key optical water quality parameters, ZSD and FUI were analyzed for their complementary roles in characterizing river turbidity across varying water conditions. By quantifying spatiotemporal patterns, this study establishes a global baseline for river optical properties and supports SDG 6.3.2 monitoring. Our findings offer new insights into large-scale river ecosystem dynamics under environmental change.
DOI Link: 10.1016/j.jag.2025.104826
Rights: This is an open access article distributed under the terms of the Creative Commons CC-BY license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. You are not required to obtain permission to reuse this article.
Licence URL(s): http://creativecommons.org/licenses/by/4.0/

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